TY - JOUR
T1 - A review on advanced manufacturing for hydrogen storage applications
AU - Free, Zach
AU - Hernandez, Maya
AU - Mashal, Mustafa
AU - Mondal, Kunal
N1 - Funding Information:
This research was funded by Center for Advanced Energy Studies (CAES) under Battelle Energy Alliance, LLC, contract no. DE-AC07-051D14517 with the U.S. Department of Energy (DOE).Author gratefully acknowledges the Energy & Environment S & T at the Idaho National Laboratory, the USA for their support. Authors acknowledge Jose Duran for useful discussions.
Funding Information:
Funding: This research was funded by Center for Advanced Energy Studies (CAES) under Battelle Energy Alliance, LLC, contract no. DE-AC07-051D14517 with the U.S. Department of Energy (DOE).
Publisher Copyright:
© 2021 by the authors. Licensee MDPI, Basel, Switzerland.
PY - 2021/12/17
Y1 - 2021/12/17
N2 - Hydrogen is a notoriously difficult substance to store yet has endless energy applications. Thus, the study of long-term hydrogen storage, and high-pressure bulk hydrogen storage have been the subject of much research in the last several years. To create a research path forward, it is important to know what research has already been done, and what is already known about hydrogen storage. In this review, several approaches to hydrogen storage are addressed, including high-pressure storage, cryogenic liquid hydrogen storage, and metal hydride absorption. Challenges and advantages are offered based on reported research findings. Since the project looks closely at advanced manufacturing, techniques for the same are outlined as well. There are seven main categories into which most rapid prototyping styles fall. Each is briefly explained and illustrated as well as some generally accepted advantages and drawbacks to each style. An overview of hydrogen adsorption on metal hydrides, carbon fibers, and carbon nanotubes are presented. The hydrogen storage capacities of these materials are discussed as well as the differing conditions in which the adsorption was performed under. Concepts regarding storage shape and materials accompanied by smaller-scale advanced manufacturing options for hydrogen storage are also presented.
AB - Hydrogen is a notoriously difficult substance to store yet has endless energy applications. Thus, the study of long-term hydrogen storage, and high-pressure bulk hydrogen storage have been the subject of much research in the last several years. To create a research path forward, it is important to know what research has already been done, and what is already known about hydrogen storage. In this review, several approaches to hydrogen storage are addressed, including high-pressure storage, cryogenic liquid hydrogen storage, and metal hydride absorption. Challenges and advantages are offered based on reported research findings. Since the project looks closely at advanced manufacturing, techniques for the same are outlined as well. There are seven main categories into which most rapid prototyping styles fall. Each is briefly explained and illustrated as well as some generally accepted advantages and drawbacks to each style. An overview of hydrogen adsorption on metal hydrides, carbon fibers, and carbon nanotubes are presented. The hydrogen storage capacities of these materials are discussed as well as the differing conditions in which the adsorption was performed under. Concepts regarding storage shape and materials accompanied by smaller-scale advanced manufacturing options for hydrogen storage are also presented.
KW - 3D printing
KW - Advanced manufacturing
KW - Bulk hydrogen storage
KW - Carbon
KW - Metal hydrides
UR - https://www.scopus.com/pages/publications/85121542064
UR - https://www.mendeley.com/catalogue/bacb412d-0231-3b9e-a464-9efbc475fb97/
U2 - 10.3390/en14248513
DO - 10.3390/en14248513
M3 - Review article
AN - SCOPUS:85121542064
SN - 1996-1073
VL - 14
JO - Energies
JF - Energies
IS - 24
M1 - 8513
ER -